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A short introduction in what I want to achieve with this.
I've a custom UIView where I want to make arrows visible, for example on bottom and left side. I thought it would be possible to do this the same way as UIViewAutoresizing does it.

So I created a similar typedef for my custom view:

typedef NS_OPTIONS(NSUInteger, Arrows) {
    ArrowNone      = 0,
    ArrowRight     = 1 << 0,
    ArrowBottom    = 1 << 1,
    ArrowLeft      = 1 << 2,
    ArrowTop       = 1 << 3
};

Also in my custom view header file I added:

@property (nonatomic) Arrows arrows;

This all works and now I'm able to set the property:
customview.arrows = (ArrowBottom | ArrowLeft);

This returns 6

Now's my question how can check if my arrows property contains bottom and left? I tried:

if (self.arrows == ArrowLeft) {
    Show arrow left
}

This didn't do anything. Is there another way to check this?

share|improve this question
    
Thanks that's what I was looking for. Tried to search for it but couldn't find anything. Don't understand the downvote though. – app_ Nov 4 '12 at 10:01
    
@alexgray Note, it wasn't moderators that close this question. – casperOne Dec 3 '12 at 15:44

The right way to check your bitmask is by decoding the value using the AND (&) operator as follows:

Arrows a = (ArrowLeft | ArrowRight);    
if (a & ArrowBottom) {
   NSLog(@"arrow bottom code here");    
}

if (a & ArrowLeft) {
   NSLog(@"arrow left code here");    
}    

if (a & ArrowRight) {
   NSLog(@"arrow right code here");    
}

if (a & ArrowTop) {
   NSLog(@"arrow top code here");    
}

This will print out in the console:

arrow left code here
arrow right code here
share|improve this answer
    
How to check for both ArrowLeft and ArrowRight? – Shmidt Jul 5 '14 at 14:20
    
late to party but (a & (ArrowTop | ArrowRight)) should work – guenis Aug 24 '15 at 18:31

To do a compound check you could use the following code:

if ((a & ArrowRight) && (a & ArrowTop)) {
       NSLog(@"arrow right and top code here");    
}
share|improve this answer

The correct way to check for this value is to first bitwise AND the values and then check for equality to the required value.

Arrows a = (ArrowBottom | ArrowLeft);    
if (((a & ArrowBottom) == ArrowBottom) && ((a & ArrowLeft) == ArrowLeft)) {
    // arrow bottom-left
}

The following reference explains why this is correct and provides other insights into enumerated types.

Reference: checking-for-a-value-in-a-bit-mask

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